Exploring the Interface of Porous Cathode/Bipolar Membrane for Mitigation of Inorganic Precipitates in Direct Seawater Electrolysis

被引:20
作者
Han, Ji-Hyung [1 ]
机构
[1] Korea Inst Energy Res, Jeju Global Res Ctr, 200 Haemajihaean Ro, Gujwa Eup 63357, Jeju, South Korea
基金
新加坡国家研究基金会;
关键词
direct seawater electrolysis; inorganic precipitation; bipolar membrane; renewable hydrogen; water splitting; EFFICIENT; ELECTROCATALYSTS; GENERATION; OXIDATION; CATALYST; HYDROGEN; OXYGEN; CO;
D O I
10.1002/cssc.202200372
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Direct seawater electrolysis utilizes natural seawater as the electrolyte. Hydroxide ions generated from the hydrogen evolution reaction at the cathode induce the precipitation of inorganic compounds, which block the active sites of the catalysts, leading to high cell voltage. To mitigate inorganic scaling, herein, an optimized interface between a porous electrode and a bipolar membrane (BPM, as a separator) was suggested in zero-gap seawater electrolyzers. Despite the formation of inorganic deposits at the front side (facing bulk seawater) of the porous cathode due to the water reduction reaction, the back side facing the cation exchange layer of the BPM remained free from thick inorganic deposits. This was ascribed to the locally acidic environment generated by proton flux from water dissociation at the BPM, enabling stable hydrogen production via the proton reduction at low overpotential. This asymmetric hydrogen evolution reaction at the porous cathode led to a considerably lower cell voltage and higher stability than that achieved with the mesh electrode. Moreover, precipitation at the front side of the porous cathode was further mitigated through acidification of the seawater by introducing an open area of the BPM that was not in contact with the porous cathode, allowing free protons that were not involved in the electron transfer reaction to diffuse out into the bulk seawater. These findings may provide critical guidance for the investigation of interfacial phenomena for the complete mitigation of inorganic scaling in the direct electrolytic splitting of seawater.
引用
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页数:10
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共 30 条
  • [1] Bard A.J., 2001, FUNDAMENTALS APPL EL
  • [2] ELECTRODES FOR GENERATION OF HYDROGEN AND OXYGEN FROM SEAWATER
    BENNETT, JE
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1980, 5 (04) : 401 - 408
  • [3] Synergistic action of Co-Fe layered double hydroxide electrocatalyst and multiple ions of sea salt for efficient seawater oxidation at near-neutral pH
    Cheng, Feifei
    Feng, Xiaolei
    Chen, Xu
    Lin, Weiguo
    Rong, Junfeng
    Yang, Wensheng
    [J]. ELECTROCHIMICA ACTA, 2017, 251 : 336 - 343
  • [4] Design Criteria, Operating Conditions, and Nickel-Iron Hydroxide Catalyst Materials for Selective Seawater Electrolysis
    Dionigi, Fabio
    Reier, Tobias
    Pawolek, Zarina
    Gliech, Manuel
    Strasser, Peter
    [J]. CHEMSUSCHEM, 2016, 9 (09) : 962 - 972
  • [5] Efficient direct seawater electrolysers using selective alkaline NiFe-LDH as OER catalyst in asymmetric electrolyte feeds
    Dresp, Soeren
    Ngo Thanh, Trung
    Klingenhof, Malte
    Brueckner, Sven
    Hauke, Philipp
    Strasser, Peter
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2020, 13 (06) : 1725 - 1729
  • [6] Direct Electrolytic Splitting of Seawater: Opportunities and Challenges
    Dresp, Soeren
    Dionigi, Fabio
    Klingenhof, Malte
    Strasser, Peter
    [J]. ACS ENERGY LETTERS, 2019, 4 (04) : 933 - 942
  • [7] Direct Electrolytic Splitting of Seawater: Activity, Selectivity, Degradation, and Recovery Studied from the Molecular Catalyst Structure to the Electrolyzer Cell Level
    Dresp, Soeren
    Dionigi, Fabio
    Loos, Stefan
    de Araujo, Jorge Ferreira
    Spoeri, Camillo
    Gliech, Manuel
    Dau, Holger
    Strasser, Peter
    [J]. ADVANCED ENERGY MATERIALS, 2018, 8 (22)
  • [8] Electrocatalytic H2 production from seawater over Co, N-codoped nanocarbons
    Gao, Shuang
    Li, Guo-Dong
    Liu, Yipu
    Chen, Hui
    Feng, Liang-Liang
    Wang, Yun
    Yang, Min
    Wang, Dejun
    Wang, Shan
    Zou, Xiaoxin
    [J]. NANOSCALE, 2015, 7 (06) : 2306 - 2316
  • [9] Economics of converting renewable power to hydrogen
    Glenk, Gunther
    Reichelstein, Stefan
    [J]. NATURE ENERGY, 2019, 4 (03) : 216 - 222
  • [10] Direct seawater electrolysis via synergistic acidification by inorganic precipitation and proton flux from bipolar membrane
    Han, Ji-Hyung
    Jwa, Eunjin
    Lee, Hongjun
    Kim, Eun Joong
    Nam, Joo-Youn
    Hwang, Kyo Sik
    Jeong, Namjo
    Choi, Jiyeon
    Kim, Hanki
    Jeung, Youn-Cheul
    Chung, Taek Dong
    [J]. CHEMICAL ENGINEERING JOURNAL, 2022, 429